DocumentCode
2106660
Title
Low power silicon germanium electronics for microwave radiometers
Author
Doiron, T.A.
Author_Institution
Microwave Instrum. Technol. Branch, NASA Goddard Space Flight Center, Greenbelt, MD, USA
Volume
3
fYear
2001
fDate
2001
Firstpage
1007
Abstract
Space-based radiometric observations of key hydrological parameters (e.g., soil moisture) at the spatial and temporal scales required in the post-2002 era face significant technological challenges. These measurements are based on relatively low frequency thermal microwave emission (at 1.4 GHz for soil moisture and salinity, 10 GHz and up for precipitation, and 19 and 37 GHz for snow). The long wavelengths at these frequencies coupled with the high spatial and radiometric resolutions required by the various global hydrology communities necessitate the use of very large apertures (e.g., >20 m at 1.4 GHz) and highly integrated stable RF electronics on orbit. Radio-interferometric techniques such as Synthetic Thinned Array Radiometry (STAR), using silicon germanium (SiGe) low power radio frequency integrated circuits (RFIC), is one of the most promising technologies to enable very large non-rotating apertures in space. STAR instruments are composed of arrays of small antenna/receiving elements that are arranged so that the collecting area is smaller than an equivalent real aperture system, allowing very high packing densities for launch. A 20-meter aperture at L-band, for example, will require >1000 of these receiving elements. SiGe RFIC´s reduce power consumption enough to make an array like this possible in the power-limited environment of space flight. An overview of the state-of-the-art will be given, and current work in the area of SiGe radiometer development for soil moisture remote sensing will be discussed
Keywords
geophysical equipment; hydrological equipment; integrated circuits; microwave circuits; radiometers; remote sensing; terrain mapping; 1 to 40 GHz; EHF; L-band; SHF; SiGe; UHF; atmosphere; equipment; geophysical measurement technique; hydrology; instrument; land surface; low power electronics; microwave radiometer; microwave radiometry; remote sensing; sensor; soil moisture; terrain mapping; Apertures; Frequency; Germanium silicon alloys; Microwave measurements; Microwave radiometry; Radiofrequency integrated circuits; Radiometers; Silicon germanium; Soil moisture; Space technology;
fLanguage
English
Publisher
ieee
Conference_Titel
Geoscience and Remote Sensing Symposium, 2001. IGARSS '01. IEEE 2001 International
Conference_Location
Sydney, NSW
Print_ISBN
0-7803-7031-7
Type
conf
DOI
10.1109/IGARSS.2001.976729
Filename
976729
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